2018
DOI: 10.7717/peerj-cs.145
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MCLEAN: Multilevel Clustering Exploration As Network

Abstract: Finding useful patterns in datasets has attracted considerable interest in the field of visual analytics. One of the most common tasks is the identification and representation of clusters. However, this is non-trivial in heterogeneous datasets since the data needs to be analyzed from different perspectives. Indeed, highly variable patterns may mask underlying trends in the dataset. Dendrograms are graphical representations resulting from agglomerative hierarchical clustering and provide a framework for viewing… Show more

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Cited by 3 publications
(2 citation statements)
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“…A number of earlier research projects used the network metaphor to facilitate the understanding of multidimensional data (e.g., [17,18,19,20]). All these techniques depend on a parameter which determines the elements' connectivity.…”
Section: Exploration Of Data Through Network Structuresmentioning
confidence: 99%
See 1 more Smart Citation
“…A number of earlier research projects used the network metaphor to facilitate the understanding of multidimensional data (e.g., [17,18,19,20]). All these techniques depend on a parameter which determines the elements' connectivity.…”
Section: Exploration Of Data Through Network Structuresmentioning
confidence: 99%
“…Consequently, additional transformations such as aggregation to reduce the number of nodes and/or edges are still needed. A possible solution can be found in community detection pipelines [59], such as MCLEAN [18], that simplify this visual representation.…”
Section: Visual Scalabilitymentioning
confidence: 99%